ZOJ Monthly, November 2014

做了一次月赛，没想到这么难，加上后来补上的题目也只有3个题。第一名也只有4个题啊啊啊啊~.其中两道还是水题。留坑慢慢补上来。

 3832 Tilt Cylinder

　　　　　　　　　　　　　　　　　　　　　　　　　　　　　　

给定如图所示有盖圆柱体，R，H,水面高度h，倾角a，求水得体积。

分析：明显的数值积分题，这样考虑。圆下底面即A点与地面高度lim1, 圆上底面一点B与地面高度lim2,h所处的范围进行讨论从而确定积分几何体的两边的高度。我们积分的几何体应该是一个圆柱体被削掉一部分了。

h>lim1时，几何体左半部分可以减掉一个圆柱，对剩下部分积分，剩下部分左边截面的高度2*R；否则高度为2*R/cos(a);

h>lim2时，几何体右半部分截面的高度需要计算，为(h-lim2)/cos(a);否则为0.

注意：这里所说的结合体截面的高度是相对与下面的母线而言，并不是对地高度。

然后对上面给出的高度范围结合夹角a进行积分，需要推导截面的面积。最后答案需要加上截掉的那部分完整的圆柱体体积（如果是那种情况的话）。

代码：

#include <bits/stdc++.h>
#define pb push_back
#define mp make_pair
#define esp 1e-12
#define lowbit(x) ((x)&(-x))
#define lson   l, m, rt<<1
#define rson   m+1, r, rt<<1|1
#define sz(x) ((int)((x).size()))
#define pb push_back
#define pf(x) ((x)*(x))

#define pi acos(-1.0)

#define in freopen("solve_in.txt", "r", stdin);
#define out freopen("solve_out.txt", "w", stdout);

#define bug(x) printf("Line : %u >>>>>>
", (x));
#define inf 0x0f0f0f0f
using namespace std;


int dblcmp(double x) {
    if(fabs(x) < esp) return 0;
    return x > 0 ? 1 : -1;
}
const int N = 200;
double R, H, a, h;
double f1(double x) {
    double cth = (R-x)/R;
    return acos(cth)*pf(R)-(R-x)*sqrt(pf(R)-pf(R-x));
}
double f2(double x) {
    double cth = (x-R)/R;
    return (pi-acos(cth))*pf(R)+(x-R)*sqrt(pf(R)-pf(x-R));
}
double s1(double l, double r) {
    double x = 0, y = (l-r)/tan(a);
    double h0 = (y-x)/N;

    double res = 0.0;
    res = f1(l)+f1(r);
    for(int i = 1; i <= N; i++) {
        if(i < N)
            res += 2*f1(l-(x+i*h0)*tan(a));
        res += 4*f1(l-(x+(2*i-1)*h0/2)*tan(a));
    }
    return res*h0/6;

}
double s2(double l, double r) {
    double x = 0, y = (l-r)/tan(a);
    double h0 = (y-x)/N;

    double res = 0.0;
    res = f2(l)+f2(r);
    for(int i = 1; i <= N; i++) {
        if(i < N)
            res += 2*f2(l-(x+i*h0)*tan(a));
        res += 4*f2(l-(x+(2*i-1)*h0/2)*tan(a));
    }
    return res*h0/6;
}

double getAns(double h0, double h1) {
    if(h1 > R) {
        return s2(h0, h1);
    } else if(h0 < R) {
        return s1(h0, h1);
    } else {
        return s2(h0, R)+s1(R, h1);
    }
}
int main() {
    
    while(scanf("%lf%lf%lf%lf", &R, &H, &h, &a) == 4) {
        double res = 0.0;
        if(fabs(a) > esp && fabs(a-90.0) > esp) {
            a = a*pi/180.0;
            double lim2 = sin(a)*H;
            double lim1 = 2*R*cos(a);

            double h1, h2;
            if(h > lim1) {
                h1 = 2*R;
                res += pi*pf(R)*(h/sin(a)-2*R/tan(a));
            } else {
                h1 = h/cos(a);
            }
            if(h > lim2) {
                h2 = (h-lim2)/cos(a);
            } else {
                h2 = 0.0;
            }
            res += getAns(h1, h2);

        } else {
            if(fabs(a) < esp) {
                double Sr;
                if(h > R){
                    Sr = f2(h);
                }else{
                    Sr = f1(h);
                }
                res = Sr*H;
            } else {
                res = pi*pf(R)*h;
            }
        }
        printf("%.12f
", res);
    }
    return 0;
}

3839 Poker Face

分析：第n个是将第n/2个倒插进去然后加上眼睛等部分。

代码：

#include <bits/stdc++.h>
#define pb push_back
#define mp make_pair
#define esp 1e-8
#define lowbit(x) ((x)&(-x))
#define lson   l, m, rt<<1
#define rson   m+1, r, rt<<1|1
#define sz(x) ((int)((x).size()))
#define pb push_back
#define in freopen("solve_in.txt", "r", stdin);
#define out freopen("solve_out.txt", "w", stdout);

#define bug(x) printf("Line : %u >>>>>>
", (x));
#define inf 0x0f0f0f0f
#define Fill(x, b1, b2, l, r) {
    for(int i = 0; i < l; i++)
        maze[x][i+b1][b2] = maze[x][i+b1][b2+r-1] = '*';
    for(int i = 0; i < r; i++)
        maze[x][b1][i+b2] = maze[x][b1+l-1][i+b2] = '*';
}

using namespace std;
typedef long long LL;
typedef pair<int, int> PII;
typedef map<string, int> MPS;

using namespace std;
const int maxn = 1100;
char s[maxn][maxn] = {
        {"********"}, {"***  ***"}, {"***  ***"}, {"***  ***"}, {"* **** *"}, {"* *  * *"},
        {"* *  * *"}, {"********"}
    };

char maze[12][maxn][maxn];

int popcount(int x){
    int ans = 0;
    while(1){
        if(x&1) break;
        ans++;
        x >>= 1;
    }
    return ans;
}
void dfs(int n){
    if(n <= 8) return;
    int x = popcount(n);
//    cout << x << endl;
    for(int i = 0; i < n; i++) for(int j = 0; j < n; j++)
        maze[x][i][j] = ' ';
    Fill(x, 0, 0, n, n)
    int st1 = n/8, st2 = st1+n/2;
    Fill(x,  n/8, st1, n/4+1, n/4)
    Fill(x, n/8, st2, n/4+1, n/4)
    dfs(n>>1);
    int b1 = n/2, b2 = n/4;
    int nn = n>>1;
    for(int i = 0; i < (n>>1); i++)
    for(int j = 0; j < (n>>1); j++){
        maze[x][b1+i][b2+j] = maze[x-1][nn-1-i][nn-1-j];
    }
}
int main() {
    
    int n;
    for(int i = 0; i < 8; i++)
        strcpy(maze[3][i], s[i]);
    dfs(1024);

    while(scanf("%d", &n), n >= 8) {
//            cout << n <<endl;
        int x = popcount(n);
//        cout << x << endl;
        for(int i = 0; i < n; i++)
            puts(maze[x][i]);
        puts("");
    }
    return 0;
}

3838 Infusion Altar

分析：对每个点和其对称点访问一遍，将数目最多的那种保留，其他全部替换成这种。

代码：

#include <bits/stdc++.h>
#define pb push_back
#define mp make_pair
#define esp 1e-8
#define lowbit(x) ((x)&(-x))
#define lson   l, m, rt<<1
#define rson   m+1, r, rt<<1|1
#define sz(x) ((int)((x).size()))
#define pb push_back
#define in freopen("solve_in.txt", "r", stdin);
#define out freopen("solve_out.txt", "w", stdout);

#define bug(x) printf("Line : %u >>>>>>
", (x));
#define inf 0x0f0f0f0f
using namespace std;
const int maxn = 110;
char maze[maxn][maxn];
int vis[maxn][maxn];
vector<char> tmp;
int n;

void dfs(int x, int y){
    if(vis[x][y]) return;
    vis[x][y] = 1;
    tmp.pb(maze[x][y]);
    dfs(y, x);
    dfs(n-1-y, n-1-x);
    dfs(n-1-x, y);
    dfs(x, n-1-y);
}
int main(){

    int T;
    for(int t = scanf("%d", &T); t <= T; t++){
        scanf("%d", &n);
        int ans = 0;
        for(int i = 0; i < n; i++)
            scanf("%s", maze[i]);
//        for(int i = 0; i < n; i++)
//            cout << maze[i];
        memset(vis, 0, sizeof vis);
        for(int i = 0; i < n; i++)for(int j = 0; j < n; j++){
            if(vis[i][j]) continue;
            tmp.clear();
            dfs(i, j);
            sort(tmp.begin(), tmp.end());
            int jj;
            int mx = 0;
            for(int ii = 0; ii < sz(tmp); ii = jj){
                int ok = 0;
                for(jj = ii; jj < sz(tmp) && tmp[jj] == tmp[ii]; jj++)
                    ok++;
                mx = max(ok, mx);
            }
            ans += sz(tmp)-mx;
        }
        cout << ans << endl;
    }
    return 0;
}